Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment

The study investigated aerosolization, pulmonary inhalation, intracellular trafficking potential in macrophages and pharmacokinetics profiles of rifampicin-oleic acid first-generation nanoemulsion and its respective chitosan-and chitosan-folate conjugate-decorated second and third-generation nanoemu...

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Published in:Drug Delivery
Main Author: Shah K.; Chan L.W.; Wong T.W.
Format: Article
Language:English
Published: Taylor and Francis Ltd 2017
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85041785034&doi=10.1080%2f10717544.2017.1384298&partnerID=40&md5=cdec82b1de702a94d8672c90f747c37c
id 2-s2.0-85041785034
spelling 2-s2.0-85041785034
Shah K.; Chan L.W.; Wong T.W.
Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment
2017
Drug Delivery
24
1
10.1080/10717544.2017.1384298
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85041785034&doi=10.1080%2f10717544.2017.1384298&partnerID=40&md5=cdec82b1de702a94d8672c90f747c37c
The study investigated aerosolization, pulmonary inhalation, intracellular trafficking potential in macrophages and pharmacokinetics profiles of rifampicin-oleic acid first-generation nanoemulsion and its respective chitosan-and chitosan-folate conjugate-decorated second and third-generation nanoemulsions, delivered via nebulization technique. The nanoemulsions were prepared by conjugate synthesis and spontaneous emulsification techniques. They were subjected to physicochemical, drug release, aerosolization, inhalation, cell culture and pharmacokinetics analysis. The nanoemulsions had average droplet sizes of 40–60 nm, with narrow polydispersity indices. They exhibited desirable pH, surface tension, viscosity, refractive index, density and viscosity attributes for pulmonary rifampicin administration. All nanoemulsions demonstrated more than 95% aerosol output and inhalation efficiency greater than 75%. The aerosol output, aerosolized and inhaled fine particle fractions were primarily governed by the size and surface tension of nanoemulsions in an inverse relationship. The nanoemulsions were found to be safe with third-generation nanoemulsion exhibiting higher cell internalization potential, reduced plasma drug concentration, and higher lung drug content. © 2017 The Author(s).
Taylor and Francis Ltd
10717544
English
Article
All Open Access; Gold Open Access; Green Open Access
author Shah K.; Chan L.W.; Wong T.W.
spellingShingle Shah K.; Chan L.W.; Wong T.W.
Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment
author_facet Shah K.; Chan L.W.; Wong T.W.
author_sort Shah K.; Chan L.W.; Wong T.W.
title Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment
title_short Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment
title_full Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment
title_fullStr Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment
title_full_unstemmed Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment
title_sort Critical physicochemical and biological attributes of nanoemulsions for pulmonary delivery of rifampicin by nebulization technique in tuberculosis treatment
publishDate 2017
container_title Drug Delivery
container_volume 24
container_issue 1
doi_str_mv 10.1080/10717544.2017.1384298
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85041785034&doi=10.1080%2f10717544.2017.1384298&partnerID=40&md5=cdec82b1de702a94d8672c90f747c37c
description The study investigated aerosolization, pulmonary inhalation, intracellular trafficking potential in macrophages and pharmacokinetics profiles of rifampicin-oleic acid first-generation nanoemulsion and its respective chitosan-and chitosan-folate conjugate-decorated second and third-generation nanoemulsions, delivered via nebulization technique. The nanoemulsions were prepared by conjugate synthesis and spontaneous emulsification techniques. They were subjected to physicochemical, drug release, aerosolization, inhalation, cell culture and pharmacokinetics analysis. The nanoemulsions had average droplet sizes of 40–60 nm, with narrow polydispersity indices. They exhibited desirable pH, surface tension, viscosity, refractive index, density and viscosity attributes for pulmonary rifampicin administration. All nanoemulsions demonstrated more than 95% aerosol output and inhalation efficiency greater than 75%. The aerosol output, aerosolized and inhaled fine particle fractions were primarily governed by the size and surface tension of nanoemulsions in an inverse relationship. The nanoemulsions were found to be safe with third-generation nanoemulsion exhibiting higher cell internalization potential, reduced plasma drug concentration, and higher lung drug content. © 2017 The Author(s).
publisher Taylor and Francis Ltd
issn 10717544
language English
format Article
accesstype All Open Access; Gold Open Access; Green Open Access
record_format scopus
collection Scopus
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